Abstract:
Applications of a suspension device in human bodies, animals, and plants, include: applications of a magnetic suspension device in human bodies and animals; applications of a drift and suspension device in plantation of plants; and applications of a drift and suspension device in seawater/sewage treatment. Through the applications of the device, a “hypomagnetic” environment can be provided for human bodies, animals, and plants, and the human bodies, animals, and plants can grow healthily in the “hypomagnetic” environment.
Abstract:
A ejector assembly, comprising: an ejector (10) with a shape of “L”, being provided to rotate around an axis; a lock element (20), being provided to move along a direction substantially perpendicular to a plan of the rotation of the ejector (10); wherein the ejector (10) includes a cut-out portion (12), the lock element (12) includes an end portion (21), and the end portion (21) is provided to match with the cut-out portion (12) to prevent the ejector (10) from rotating.
Abstract:
A scale includes a stationary bracket, a movable bracket, a linear displacement sensor and a plurality of the resilient mechanisms. The movable bracket is disposed opposite to the stationary bracket. The linear displacement sensor is disposed between the stationary bracket and the movable bracket. The resilient mechanisms are disposed between the stationary bracket and the movable bracket. Each resilient mechanism includes a limiting shaft, a sleeve movably sleeved on the limiting shaft and a resilient member received in the sleeve. The limiting shaft is fixed to one of the stationary bracket or the movable bracket, and the sleeve is fixed to the other. The resilient member is elastically deformed by resisting a free end of the limiting shaft. The linear displacement sensor registers a displacement of the movable bracket.
Abstract:
A transmitter-receiver system is modeled by representing an output driver connected to an output node of a transmitter with a capacitive characteristic at the output node, representing a receiving buffer connected to an input node of a receiver, and representing a transmission path between the output node of the transmitter and the input node of the receiver.
Abstract:
A natural heat energy conversion and storage device includes: a heat energy transmission system, an energy conversion system, and an energy storage unit. The heat energy transmission system is used for performing large-scale collection of heat energy through an energy absorption and expansion unit, and transferring the heat energy to a heated end of a heat pipe, which can be superconducting. The heat pipe transfers the heat energy to an energy conversion unit where the heat energy can be converted into electric energy. The energy conversion unit is used for converting the heat energy collected by the heat energy transmission system into electric energy, and storing the generated electric energy into the energy storage unit. The number of modules of the energy conversion unit is at least one. The energy storage unit is used for storing the electric energy obtained through conversion by the energy conversion unit.
Abstract:
This invention provides an Electro-Static shielding apparatus, an electronic device, and a method for manufacturing said Electro-Static shielding apparatus. Said Electro-Static shielding apparatus comprises: a base layer; a printed circuit block embedded into the base layer; an Electro-Static shielding layer located on an upper surface of the base layer and at least covering sensitive areas, the sensitive areas are those corresponding to the areas required to be shielded on the printed circuit block; and an insulating layer for at least covering the Electro-Static shielding layer. According to the technical solution of this invention, an effective shielding effect can be achieved, moreover, the manufacture cost can be reduced and a good flatness will be reached.
Abstract:
A scale includes a stationary bracket, a movable bracket, a linear displacement sensor and a plurality of the resilient mechanisms. The movable bracket is disposed opposite to the stationary bracket. The linear displacement sensor is disposed between the stationary bracket and the movable bracket. The resilient mechanisms are disposed between the stationary bracket and the movable bracket. Each resilient mechanism includes a limiting shaft, a sleeve movably sleeved on the limiting shaft and a resilient member received in the sleeve. The limiting shaft is fixed to one of the stationary bracket or the movable bracket, and the sleeve is fixed to the other. The resilient member is elastically deformed by resisting a free end of the limiting shaft. The linear displacement sensor registers a displacement of the movable bracket.